College of Pharmacy, Dongguk University-Seoul, Dongguk-ro-32, Ilsan-Donggu, Goyang, Republic of Korea.
College of Pharmacy, Dongguk University-Seoul, Dongguk-ro-32, Ilsan-Donggu, Goyang, Republic of Korea.
J Control Release. 2019 Oct;311-312:74-84. doi: 10.1016/j.jconrel.2019.08.036. Epub 2019 Sep 2.
This research aimed to develop a pH-responsive organic-inorganic hybrid nanocomposite as an effective oral delivery system for protein drugs. Three different nanocomposites were prepared by using bovine serum albumin (BSA) as a model protein. A nanocomplex of BSA with 3-aminopropyl functionalized magnesium phyllosilicate (AC-BSA) was obtained via the spontaneous co-assembly and then sequentially coated with glycol-chitosan (GAC-BSA) and the pH sensitive polymer, Eudragit®L100-55 (EGAC-BSA). These organic-inorganic hybrid nanocomposites exhibited high entrapment efficiency (86-99%) and their structural characteristics were confirmed by using energy dispersive X-ray spectroscopy, Fourier transform infrared spectroscopy, and circular dichroism analysis, indicating that the secondary structure of BSA was well retained in the nanocomposites. At pH 1.2, AC-BSA achieved rapid drug release of about 80% within 2 h, while GAC-BSA and EGAC-BSA exhibited slow drug release of 30% and 15%, respectively, indicating that the surface-coated nanocomposites were more stable in the gastric condition. Furthermore, the conformational stability of BSA entrapped in EGAC-BSA was well retained in the presence of proteolytic enzymes, suggesting that EGAC-BSA should be effective in protecting the protein against gastrointestinal harsh environment. Compared to free BSA, all of tested nanocomposites demonstrated 2.1-3.8-fold higher cellular uptake in Caco-2 cells. Furthermore, energy-dependent endocytosis and paracellular pathway contributed to the cellular transport of nanoparticles. After oral administration in rats, EGAC-BSA significantly enhanced the intestinal permeation of BSA compared to free BSA. In conclusion, EGAC-BSA appears to be promising as an effective oral delivery system for proteins with enhanced intestinal absorption.
本研究旨在开发一种 pH 响应型有机-无机杂化纳米复合材料,作为蛋白质药物的有效口服递送系统。使用牛血清白蛋白 (BSA) 作为模型蛋白,制备了三种不同的纳米复合材料。通过自发共组装获得 BSA 与 3-氨丙基功能化镁层状硅酸盐 (AC-BSA) 的纳米复合物,然后依次用乙二醇壳聚糖 (GAC-BSA) 和 pH 敏感聚合物,Eudragit®L100-55 (EGAC-BSA) 进行包覆。这些有机-无机杂化纳米复合材料表现出高包封效率 (86-99%),并通过能量色散 X 射线能谱、傅里叶变换红外光谱和圆二色性分析证实了其结构特征,表明 BSA 的二级结构在纳米复合材料中得到了很好的保留。在 pH 1.2 时,AC-BSA 在 2 h 内实现了约 80%的快速药物释放,而 GAC-BSA 和 EGAC-BSA 分别显示出 30%和 15%的缓慢药物释放,表明表面包覆的纳米复合材料在胃环境中更稳定。此外,在存在蛋白水解酶的情况下,包封在 EGAC-BSA 中的 BSA 的构象稳定性得到很好的保留,表明 EGAC-BSA 应该能够有效保护蛋白质免受胃肠道恶劣环境的影响。与游离 BSA 相比,所有测试的纳米复合材料在 Caco-2 细胞中的细胞摄取率均提高了 2.1-3.8 倍。此外,能量依赖性内吞作用和细胞旁途径有助于纳米颗粒的细胞转运。在大鼠口服给药后,与游离 BSA 相比,EGAC-BSA 显著增强了 BSA 的肠道渗透。综上所述,EGAC-BSA 有望成为一种有效的蛋白质口服递送系统,可增强肠道吸收。